WO1997024015A1 - Electroluminescent filament - Google Patents

Electroluminescent filament Download PDF

Info

Publication number
WO1997024015A1
WO1997024015A1 PCT/US1996/020434 US9620434W WO9724015A1 WO 1997024015 A1 WO1997024015 A1 WO 1997024015A1 US 9620434 W US9620434 W US 9620434W WO 9724015 A1 WO9724015 A1 WO 9724015A1
Authority
WO
WIPO (PCT)
Prior art keywords
layer
core conductor
electroluminescent filament
luminescing
outer electrode
Prior art date
Application number
PCT/US1996/020434
Other languages
French (fr)
Inventor
Michael C. Feldman
Bryan D. Haynes
Original Assignee
Add-Vision, Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Add-Vision, Inc. filed Critical Add-Vision, Inc.
Priority to EA199800473A priority Critical patent/EA000441B1/en
Priority to IL12498896A priority patent/IL124988A0/en
Priority to EP96944937A priority patent/EP0956740A1/en
Priority to AU13418/97A priority patent/AU709110C/en
Priority to BR9612202-1A priority patent/BR9612202A/en
Priority to JP52383097A priority patent/JP2002502538A/en
Publication of WO1997024015A1 publication Critical patent/WO1997024015A1/en

Links

Classifications

    • DTEXTILES; PAPER
    • D02YARNS; MECHANICAL FINISHING OF YARNS OR ROPES; WARPING OR BEAMING
    • D02GCRIMPING OR CURLING FIBRES, FILAMENTS, THREADS, OR YARNS; YARNS OR THREADS
    • D02G3/00Yarns or threads, e.g. fancy yarns; Processes or apparatus for the production thereof, not otherwise provided for
    • D02G3/44Yarns or threads characterised by the purpose for which they are designed
    • D02G3/441Yarns or threads with antistatic, conductive or radiation-shielding properties
    • DTEXTILES; PAPER
    • D04BRAIDING; LACE-MAKING; KNITTING; TRIMMINGS; NON-WOVEN FABRICS
    • D04CBRAIDING OR MANUFACTURE OF LACE, INCLUDING BOBBIN-NET OR CARBONISED LACE; BRAIDING MACHINES; BRAID; LACE
    • D04C1/00Braid or lace, e.g. pillow-lace; Processes for the manufacture thereof
    • D04C1/02Braid or lace, e.g. pillow-lace; Processes for the manufacture thereof made from particular materials
    • HELECTRICITY
    • H05ELECTRIC TECHNIQUES NOT OTHERWISE PROVIDED FOR
    • H05BELECTRIC HEATING; ELECTRIC LIGHT SOURCES NOT OTHERWISE PROVIDED FOR; CIRCUIT ARRANGEMENTS FOR ELECTRIC LIGHT SOURCES, IN GENERAL
    • H05B33/00Electroluminescent light sources
    • DTEXTILES; PAPER
    • D10INDEXING SCHEME ASSOCIATED WITH SUBLASSES OF SECTION D, RELATING TO TEXTILES
    • D10BINDEXING SCHEME ASSOCIATED WITH SUBLASSES OF SECTION D, RELATING TO TEXTILES
    • D10B2401/00Physical properties
    • D10B2401/16Physical properties antistatic; conductive
    • DTEXTILES; PAPER
    • D10INDEXING SCHEME ASSOCIATED WITH SUBLASSES OF SECTION D, RELATING TO TEXTILES
    • D10BINDEXING SCHEME ASSOCIATED WITH SUBLASSES OF SECTION D, RELATING TO TEXTILES
    • D10B2401/00Physical properties
    • D10B2401/20Physical properties optical
    • DTEXTILES; PAPER
    • D10INDEXING SCHEME ASSOCIATED WITH SUBLASSES OF SECTION D, RELATING TO TEXTILES
    • D10BINDEXING SCHEME ASSOCIATED WITH SUBLASSES OF SECTION D, RELATING TO TEXTILES
    • D10B2403/00Details of fabric structure established in the fabric forming process
    • D10B2403/02Cross-sectional features
    • D10B2403/024Fabric incorporating additional compounds
    • D10B2403/0243Fabric incorporating additional compounds enhancing functional properties
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S428/00Stock material or miscellaneous articles
    • Y10S428/917Electroluminescent

Definitions

  • the present invention relates to electroluminescent filaments ("EL filaments"). More specifically, the present invention relates to EL filaments, portions of which may be individually illuminated.
  • EL filaments have been known generally in the art; however, few have been produced beyond a test scale and the conventional filaments have had a series of problems, including low reliability and low light intensity.
  • the conventional EL filaments lack sufficient flexibility to be made into one-, two-, and three-dimensional light emitting objects using textile fabrication technologies such as knitting, weaving, braiding, etc., that use raw materials in filamentary form.
  • EL filaments include a central solid core conductor coated with a luminescent material and an outer electrode that is made of either a single conductor wound around the core or a transparent conducting film coated onto the luminescing layer. Since the conventional filaments include only a single outer electrode or transparent coated electrode, it is not possible to energize individual portions of the conventional filaments. This is a drawback in applications which require different portions of the filament to be energized at different times; for example, applications that require animated visual effects.
  • the conventional filaments that contain only one outer electrode have the additional drawback that if the outer electrode is broken anywhere along the filament, the whole filament ceases luminescing. This makes the conventional filaments easily susceptible to damage.
  • an EL filament that includes a core conductor, a luminescing layer surrounding the core conductor, and a braided outer electrode either embedded in the luminescing layer or surrounding the luminescing layer.
  • the core conductor is a multi-strand conductor.
  • the core conductor is a multi -stranded conductor
  • the braided outer electrode covers about 50% of the surface of the luminescing layer
  • the luminescing layer includes an activated zinc sulfide encapsulated phosphor.
  • the braided outer electrode includes a plurality of individually addressable electrodes.
  • the individual electrodes are insulated from one another, they may be individually energized thereby illuminating only a portion of the EL filament.
  • One embodiment of the present invention that achieves the above includes a core conductor, a luminescing layer at least partially surrounding the core conductor, and two or more individually addressable electrodes disposed around the core conductor.
  • the individually addressable electrodes are insulated from one another; additionally, the individually addressable electrodes may be braided together to form an outer electrode, and may be embedded in the luminescing layer or disposed surrounding the luminescing layer.
  • the EL filament may also include a coupler for connecting the individual electrodes to the external power source.
  • the coupler connects the closely spaced, fragile individual electrodes to more easily accessible, thicker more robust wires that may then be attached to the power circuit.
  • the coupler may connect the individually addressable electrodes to two or more power inputs.
  • a coupler includes robust, durable contacts connected to the more fragile individually addressable electrodes. These contacts are for connecting to the external power source and for supplying power to the individually addressable electrodes.
  • Figure 1 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the present invention
  • Figure 2 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the present invention
  • Figure 3 shows a longitudinal elevation of one embodiment of an electroluminescent filament according to the present invention
  • Figure 4 shows a longitudinal elevation of one embodiment of an electroluminescent filament according to the present invention
  • Figure 5 shows a longitudinal elevation of one embodiment of an electroluminescent filament according to the present invention
  • Figure 6 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the invention
  • Figure 7 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the present invention
  • Figure 8 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the present invention
  • Figure 9 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the present invention
  • Figure 10 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the present invention
  • Figure 11 shows a perspective side view of one embodiment of an electroluminescent filament according to the present invention.
  • Figure 12 shows a series of wave forms that may be used for driving the electroluminescent filament of Figure 1 1 ;
  • Figure 13 shows a perspective top view of one embodiment of a coupler according to the present invention connected to an electroluminescent filament according to the present invention
  • Figure 14A shows a cross-sectional view of one embodiment of a coupler according to the present invention connected to an electroluminescent filament according to the present invention
  • Figure 14B shows a top plan view of the coupler of Figure 14A.
  • Figure 15 shows a perspective top view of one embodiment of a coupler according to the present invention connected to an electroluminescent filament according to the present invention.
  • the resulting filament is flexible enough to be used in textile fabrication technologies, and also has a light emission intensity and reliability that will allow it to be used commercially.
  • This combination of flexibility, reliability, and brightness enables the EL filaments of the present invention to be used in a variety of applications including illuminated logos, illuminated materials for use in night clothing, safety clothing, color change cloth, outlining objects for safety, illuminated embroidery, and illuminated needlepoint.
  • the EL filaments of the present invention may be braided over a non-conducting core such as a cotton fiber. This will produce a thicker more robust light emitting fiber which can be woven into belts etc, or which may be used to make illuminated nets which may be used, for example, in basketball, tennis, etc.
  • an electroluminescent filament according to the present invention includes a core conductor, a luminescing layer surrounding the core conductor, and an outer electrode surrounding the core conductor and insulated from the core conductor.
  • “surrounding” we mean that element A surrounds element B if element A at least partially covers the surface of element B.
  • element A does not have to be in contact with element B to surround it; moreover, element A does not have to cover the entire surface of element B to surround it.
  • a helical shaped wire wound around but not touching a core "surrounds" the core.
  • the electroluminescent filament may optionally include a first insulation layer surrounding the core conductor and a second insulation layer surrounding the luminescing layer.
  • the outer electrode may surround the luminescing layer. In an alternative embodiment, the outer electrode may be embedded in the luminescing layer.
  • the outer electrode may be embedded in this insulation layer.
  • the core may be multi-stranded and the outer electrode braided. As described in detail below, additional braided layers may be added to improve strength, cut-through resistance, etc.
  • an electroluminescent filament produces light in response to an alternating or pulsed DC current source connected across the core conductor and outer electrode.
  • the core conductor and the outer electrode can be connected across a voltage source in order to produce light as desired. It is possible to use more than one voltage source with a single filament. This may be the case if more than one outer electrode is present in the filament (see below) or if a multi-stranded core conductor is used.
  • the electroluminescent filaments of the present invention may be used to fabricate shapes that emit light when they are connected to and energized by the appropriate electrical power supply.
  • the filaments of the present invention are flexible enough to be knitted, woven, braided, etc. using textile fabrication technologies that use raw materials in filamentary form. Using these technologies, the filaments of the present invention may be used to make all sorts of one, two, and three dimensional light emitting objects. Examples of such objects include clothing, works of art, molded parts, and informational displays. In clothing, for example, electroluminescent threads can be used to embroider logos, designs, or other accents.
  • FIG. 1 shows one embodiment of an electroluminescent filament according to the present invention.
  • the filament 100 includes a core conductor 101, a first insulating layer 102, a luminescing layer 104, an outer electrode 105, and a second insulating layer 106.
  • the core conductor 101 is a conductor or semi-conductor, and may be of a single or multiple filamentary metallic or carbonaceous material, other electrically conducting or semi-conducting materials or combinations thereof.
  • the core conductor 101 may be solid or porous.
  • the cross-sectional shape of the core conductor 101 may be circular, flat, or any other acceptable geometry.
  • the core conductor 101 is a multiple-strand configuration of conducting filaments because bundles of fine filaments are more flexible than a solid individual filament. The multiple-strand configuration adds strength and flexibility to the filament.
  • the core conductor is a multi-strand core conductor.
  • These multi-strand core conductors may be in a parallel, coiled, twisted, braided, or another acceptable configuration or arrangement.
  • the number of strands, their individual diameters, composition, the method of packing and/or number of twists may be of any combination.
  • a particularly preferred core conductor material is a 19-strand bundle of stainless steel conductor filaments.
  • Each strand (filament) is about 50 gauge (roughly equivalent to about 0.001 inch dia.).
  • Each strand bundle has a fluorinated ethylene propylene (FEP) insulation layer about 0.002 inch thick, with an overall wire conductor outside diameter of about 0.012 inch (insulation inclusive).
  • FEP fluorinated ethylene propylene
  • Figure 1 shows an embodiment of the invention in which the filament or filaments of the core conductor are surrounded by a first insulation layer 102 of insulating material. While the first insulating layer 102 is not required to practice the invention, its presence is preferred. The first insulating layer 102 serves to reduce the probability of shorts between the core conductor and an outer electrode, thus increasing reliability.
  • the first insulation layer 102 surrounds the core conductor.
  • each strand may be individually surrounded by an optional first insulation layer.
  • An additional insulation layer may also surround the entire bundle of individually surrounded strands.
  • FIG. 1 shows an embodiment of the invention which includes a luminescing layer 104 surrounding the insulation layer or layers.
  • the luminescing layer 104 preferably comprises "phosphor."
  • Phosphor is a term that has evolved to mean any material that will give off light when placed in an electric field. The light may be of a variety of wavelengths.
  • the luminescing layer 104 may be deposited as a continuous or interrupted coating on the outer surface of the core conductor's insulation layer. When the luminescing layer 104 is deposited as an interrupted coating, the result may a striped or banded, light producing product. If there is a plurality of individually insulated strands, the luminescing layer may be coated on each strand or disposed between the insulated strands.
  • the phosphor may be compounded directly into the first insulation layer and applied by extrusion or another process.
  • the first insulation layer and the luminescing layer are the same layer.
  • phosphor is comprised of copper and/or manganese activated zinc-sulfide particles.
  • each phosphor particle is encapsulated to improve service life.
  • the phosphor may be either neat or in the form of a phosphor powder/resin composite.
  • Suitable resins include cyanoethyl starch or cyanoethyl cellulose, supplied as Acrylosan® or
  • a particularly preferred material for use in the luminescing layer 104 is the phosphor-based powder known as EL phosphor, available as EL-70 from Osram Sylvania Inc. (Towanda, PA).
  • EL phosphor available as EL-70 from Osram Sylvania Inc. (Towanda, PA).
  • a preferred formulation for the composite is 20% resin 80% phosphor by total weight of the composition. However, other weight ratios may be used.
  • the luminescing layer 104 may be deposited in any number of ways, such as: thermoplastic or thermoset processing, electrostatic deposition, fluidized powder bed, solvent casting, printing, spray-on application or other acceptable methods.
  • Another method for attaching the luminescing layer 104 to the first insulation layer, or to other suitable layers, if suitable for use with the materials in question, is to soften the first insulation layer 102, or other suitable layers with heat, or a solvent or other method and then to imbed the phosphor material into the first insulation layer 102, or other suitable layers.
  • Figure 1 shows an embodiment of the invention in which an outer electrode 105 surrounds the luminescing layer 104.
  • the outer electrode 105 may be applied before or simultaneously with the luminescing layer 104.
  • the outer electrode 105 comprises an electrically conductive or semi-conductive material, and preferably, the outer electrode has a braided filamentary structure.
  • braided filamentary structure we mean a plurality of individual electrodes that are braided together. The individual electrodes that make up the braided outer electrode may be coated or uncoated.
  • an EL filament that includes a braided outer electrode is that if any of the individual electrodes that make up the braided structure are damaged the filament will continue to luminesce; only if all of the electrodes in the braided electrode are damaged will the filament cease luminescing.
  • the filaments of the present invention therefore have a built in redundancy in the outer electrode; a feature which makes the filaments of the present invention more durable than conventional filaments that contain only one individual outer electrode.
  • suitable outer electrode materials include metal, carbon, metal coated fibers, inherently conducting polymers, intrinsically conducting polymers, compounds containing indium tin oxide, and semiconductors.
  • outer electrode configurations include: perforated wrap-around metallic foils (wherein the perforations may be of any shape, i.e., circular, slot or other); electrically conducting knitted, woven or non- woven cloth or fabric; non-woven mat material such as overlapping electrically conducting whiskers or tinsel; any other electrical conductor; or any combination of these materials.
  • the outer electrode is preferably made of a non-transparent material. In this case, it is also preferred that the outer electrode is non- continuous (e.g., braided structure, foraminous, etc.) to allow the electro ⁇ luminescence generated in the luminescent layer to be emitted through the outer electrode.
  • Figure 1 shows an embodiment of the invention which includes a second insulation layer 106 within which the outer electrode 105 is embedded.
  • the insulation layer 106 may surround the outer electrode 105.
  • the second insulation layer 106 is preferably comprised of an optically transparent, electrically insulating material, such as an amorphous or crystalline organic or inorganic material.
  • the second insulation layer 106 may be applied in liquid or other form with a subsequent cure or other process that may result in a permanent, semi- permanent, or temporary protective layer.
  • Particularly preferred materials include epoxies, silicones, urethanes, polyamides, and mixtures thereof. Other materials may be used to achieve desired effects.
  • the transparent, electrically insulating, materials may also be used in other layers.
  • the second insulation layer 106 is not required, but is desirable to improve reliability.
  • the second insulation layer 106 also improves the "feel"
  • a silicone coating resin such as Part No. OF113-A & -B, available from Shin-Etsu Silicones of America (Torrance, CA), may be used for the second insulation layer 106.
  • the silicone resin KE1871, available from Shin-Etsu Silicones of America (Torrance, CA) may be used for the second insulation layer 106.
  • Etsu Silicones of America may also be used for the second insulation layer 106.
  • Figure 2 shows an embodiment of the present invention that includes a core conductor 201 , surrounded by a first insulation layer 202, which is surrounded by an interlayer 203.
  • the interlayer 203 is surrounded by the luminescing layer 204, which is surrounded by a second insulation layer 206, having embedded within it an outer electrode 205.
  • the luminescing layer 204 is attached to the outermost surface of the first insulation layer 202 using one or more adhesion promoting interlayers 203.
  • Interlayers 203 may be used generally to promote interlayer adhesion, or for other desired effects, such as modification of dielectric field strength or improved longitudinal strain performance.
  • any process to modify the surfaces properties may be used, such as: mechanical abrasion, chemical etching, physical embossing, laser or flame treatment, plasma or chemical treatment or other processes to improve the surface properties.
  • Figure 3 shows an embodiment of the invention that includes a core conductor 301 surrounded by a first insulation layer 302, which is surrounded by a luminescing layer 304.
  • the luminescing layer 304 is surrounded by a second insulation layer 306, having embedded within it a braided outer electrode 305.
  • the braided outer electrode may include three or more individual electrodes forming a diagonal pattern. The individual electrodes may be intertwined.
  • the braided structure may form a wire grid. Braids may include counter-wound individual electrodes having an under and over geometry.
  • Figure 10 shows a more detailed depiction of the over and under geometry of a counter- wound braid 105. Braided structures add strength and flexibility to the filament.
  • the braided outer electrode may be formed from several different individual electrodes which can have the same or different gauges.
  • the individual electrodes can have the same or different sizes, shapes, and compositions.
  • the individual electrodes are braided over the electroluminescent core.
  • the braid covers about 50% of the electroluminescent core although more or less coverage may be, used in specific applications.
  • Figure 4 shows an embodiment of the invention that includes a core conductor 401 surrounded by a first insulation layer 402, which is surrounded by an interlayer 403.
  • the interlayer 403 is surrounded by the luminescing layer 404, which is surrounded by a second insulation layer 406, having embedded within it an electrode 405.
  • the interlayer 403 is preferably an adhesion promoting interlayer, but may also serve some other purpose in improving the operation of the filament.
  • Figure 5 shows an embodiment of the invention that includes a core conductor 501 surrounded by a first insulation layer 502, which is surrounded by an luminescing layer 504.
  • the luminescing layer 504 is surrounded by a second insulation layer 506 which is surrounded by an electrode 505.
  • the outer electrode 505 is surrounded by an additional protective layer 506a.
  • the additional protective layer 506a may be of any of the materials generally disclosed herein.
  • Figure 6 shows an embodiment of the invention that includes a dielectric braid 607 surrounding the first insulation layer 602 and embedded in the luminescing layer 604. To form the dielectric braid 607, a dielectric fiber is braided, spiral wrapped, or applied using a combination of both geometries, onto the first insulation layer 602.
  • the dielectric braid 607 may also be produced by braiding, spiral wrapping, or using a combination of both geometries, a dielectric fiber onto the core conductor 601 , such that the dielectric braid 607 surrounds the core conductor 601.
  • the dielectric braid 607 also surrounds the core conductor 601 , or the first insulation layer 602 that surrounds the core conductor 601.
  • dielectric braiding may be used in any of the layers of the invention, using dielectric fibers as described below.
  • the dielectric fibers forming the dielectric braids described herein may be made of glass, Kevlar®, polyester, acrylate, or other organic or inorganic materials suitable for use as dielectric fibers.
  • the luminescing layer(s) described herein is applied over this dielectric braid.
  • the dielectric fiber layer then acts as a coating thickness controller and may aid in adhering the luminescent layer to the core conductor.
  • the first insulation layer is a low friction and or low adhesion coating, such as a fluoropolymer coating.
  • the dielectric fiber layer provides improved resistance to "cutthrough" and improved axial strength because the dielectric fiber layer will act as a strength member.
  • the outer electrode described herein may be then directly applied to the phosphor containing dielectric fiber layer, and the second insulation layer described herein is applied to the outer electrode.
  • Figure 7 shows an embodiment of the invention that includes a core conductor 701 surrounded by a first insulation layer 702, which is surrounded by an interlayer 703.
  • the interlayer 703 is surrounded by a dielectric braid 707, similar to the dielectric braid 607 of Figure 6.
  • the luminescing layer 704 is coated over the dielectric braid 707, similar to the relationship between the luminescing layer 604 and the dielectric braid 607 of Figure 6.
  • Surrounding the luminescing layer 704 is the second insulation layer 706, having embedded within it the outer electrode 705.
  • Figure 8 shows an embodiment of the invention that includes a core conductor 801 surrounded by a first insulation layer 802, which is surrounded by a dielectric braid 807, similar to the dielectric braid 607 of Figure 6.
  • the luminescing layer 804 is coated over the dielectric braid 807, similar to the relationship between the luminescing layer 604 and the dielectric braid 607 of Figure 6.
  • Surrounding the luminescing layer 804 is the second insulation layer 806, having embedded within it both the outer electrode 805 and a second dielectric braid 808.
  • the second dielectric braid 808 may be of the same materials as the dielectric braid already described.
  • Figure 9 shows an embodiment of the invention that includes an outer electrode 905, for example a braided wire electrode, that is applied directly on the first insulation layer 902.
  • the outer electrode 905 may be applied directly on the core conductor 901, so long as they are insulated in some way.
  • the entire structure is then coated with the material of the luminescing layer 904.
  • the outer electrode 905 is then embedded in the luminescing layer 904.
  • the outer electrode 905 thus applied may be combined with dielectric materials.
  • the outer electrode 905 is a braided wire electrode, it may be combined so as to be co-braided with a dielectric braid 907 directly onto either the optional first insulation layer 902, or the core conductor 901 directly.
  • An interlayer 903 for example an adhesion promoting interlayer, may also be present if desired. Additional layers or fillers may be added, or the above mentioned layers may be modified. For example, the use of transparent colored materials and/or translucent materials in the layers may alter the spectrum of emitted light, thereby producing different colors. Opaque materials may be used in the layers, producing, for example, a striped product. Phosphorescent (i.e., "glow-in-the-dark"), and reflective materials may also be used. The reflective materials may be particulates, or they might be sheet material. Other additives may be used to correct color output and filter the spectral emission. For example, a laser dye may be added to the phosphor composition or coated on top of the phosphor composition or coated on top of the phosphor coating. This material will alter the spectral emission.
  • a laser dye may be added to the phosphor composition or coated on top of the phosphor composition or coated on top of the phosphor coating. This material will alter the spectral emission.
  • Additional layers may be added, as long as they result in a usable electroluminescent filament, as would be recognized by one of ordinary skill.
  • Figure 11 shows an electroluminescent filament 1000 according to the present invention that includes a braided outer electrode 1010, a luminescent layer 1020, and a core conductor 1030.
  • the figure shows a braided outer electrode 1010 that includes a plurality (six in the embodiment in Figure 1 1) of individually addressable electrodes 1040-1045.
  • the individually addressable electrodes are insulated from one another. This may be achieved, for example, by braiding the outer electrode 1010 using individually insulated electrodes 1040-1045.
  • This embodiment may optionally include insulation layers, interlayers, dielectric braids, and other layers as described above.
  • the individually addressable electrodes of this embodiment may be "energized” individually.
  • energized we mean that an AC (or pulsed DC) voltage difference is applied between an individual electrode and the core conductor. If the individually addressable electrode that is energized is insulated from the other individual electrodes, an electric field will only be produced in the space between the energized electrode and the core conductor. Therefore, only the phosphor in the luminescent layer that is between the energized electrode and the core conductor will electroluminesce. In this way, it is possible to make only portions of the EL filament emit light.
  • Figure 12 shows an example of a set of voltage waveforms that may be used to produce a chasing light pattern in the EL filament of Figure 11.
  • wave form 1050 corresponds to the voltage applied between the core conductor and electrode 1040
  • wave form 1051 corresponds to the voltage applied between the core conductor and electrode 1041, etc.
  • Figure 13 shows one embodiment of a coupler 1060 for facilitating coupling the individually addressable electrodes to the power source.
  • the coupler 1060 includes a separator or manifold 1070 that has an opening 1080 to accommodate the EL filament 1090.
  • the individually addressable electrodes 1100-1103 (4 electrodes in this example) are electrically connected to wires 1110-1 113 via contact pads 1120-1123.
  • the core conductor 1130 is also exposed to be connected to the power source.
  • the wires 1 1 10-1113 are more robust and durable than the individually addressable electrodes 1100-1103 and these wires are connected to the power supply circuits and microprocessor controller.
  • the individually addressable electrodes may be connected to the contact pads via conventional methods; for example, soldering.
  • Figures 14A and 14B shows cross-sectional and plan views of a connector similar to that shown in Figure 13.
  • Figure 15 shows another embodiment of a coupler according to the present invention.
  • the coupler 1200 includes a set of conducting pins 1210 mounted in a separator 1220.
  • One end 1220 of the pins 1210 is connected to the individually addressable electrodes and the core conductor. Again, the electrodes and the conductor may be attached to the pins using conventional methods such as soldering. In operation, the end
  • a coupler includes a means for connecting the fragile individual electrodes to the external power supply. It is preferred that this means includes durable, robust contacts connected to the individual electrodes and for supplying power to the more fragile electrodes. In addition, the coupler may also serve to spatially separate the individually addressable electrodes for easy access and manipulation.
  • an El filament When an El filament includes individually addressable electrodes, it is possible to remove the core electrode completely.
  • a voltage difference is applied between different individually addressable electrodes in the outer electrode. This voltage difference produces an electric field which causes the luminescent layer to emit light.
  • the conducting core may be absent altogether or may be replaced by a non conducting core, which may be used to add strength to the filament.
  • the outer electrode is embedded in the luminescing layer.
  • a core conductor comprised of a 19 strand bundle of 50 gauge wire, is selected.
  • the entire bundle has a 2 mil thick fluoropolymer insulation coating that forms the first insulation layer.
  • the first insulation layer is then coated with a particulate composite of an 80/20% by weight phosphor powder and resin mixture.
  • the particulate composite is prepared as a solution suspension by mixing the appropriate ratio of phosphor powder and resin with a 50/50 mixture of acetone and dimethylacetamide.
  • the viscosity of the solution/suspension may be adjusted by varying the solvent/solids ratio.
  • the core conductor is passed through a vertically oriented reservoir of phosphor composite, with a coating die at the bottom of the reservoir controlling the coating's thickness during the deposition process.
  • the solvents are removed from the wet coating as the wire passes through a series of in-line, heated tube furnaces.
  • the result is a solidified composite coating containing the phosphor.
  • Using a binary blend of solvents assists the drying process, as the two solvents evaporate at different rates due to differences in boiling points.
  • the finished product is a uniform, concentric and approximately 2 mil thick phosphor coating forming the luminescing layer on the first insulation layer.
  • a 16-count (number of carriers) braider is used to produce a 50% coverage of 1 mil diameter wire over the luminescing layer. This braid forms the outer electrode.
  • a second coating reservoir with an appropriate diameter sizing die is used to apply the second insulation layer onto the wire.
  • the coated filament is passed through in-line tube furnaces to convert the second insulation layer into its final form.

Abstract

An electrically activated light emitting cylindrical or other shaped composite filament. A core conductor (401) is optionally surrounded by a first optional insulation layer (402) surrounded by an outer electrode (403) and an electroluminescent phosphor (404). The entire assembly may be coated with a second insulation layer (406). Light is produced by the phosphor when the core conductor (401) and the outer electrode (403) are connected to and energized by an appropriate electrical power supply. The filament may be used to form various one-, two- and three-dimensional light emitting objects.

Description

PATENT APPLICATION
ELECTROLUMINESCENT FILAMENT
This application is a continuation-in-part of pending U.S. application No. 08/578,887, filed December 22, 1995, which is incorporated herein by reference.
BACKGROUND
The present invention relates to electroluminescent filaments ("EL filaments"). More specifically, the present invention relates to EL filaments, portions of which may be individually illuminated.
EL filaments have been known generally in the art; however, few have been produced beyond a test scale and the conventional filaments have had a series of problems, including low reliability and low light intensity. In addition, the conventional EL filaments lack sufficient flexibility to be made into one-, two-, and three-dimensional light emitting objects using textile fabrication technologies such as knitting, weaving, braiding, etc., that use raw materials in filamentary form.
Conventionally, EL filaments include a central solid core conductor coated with a luminescent material and an outer electrode that is made of either a single conductor wound around the core or a transparent conducting film coated onto the luminescing layer. Since the conventional filaments include only a single outer electrode or transparent coated electrode, it is not possible to energize individual portions of the conventional filaments. This is a drawback in applications which require different portions of the filament to be energized at different times; for example, applications that require animated visual effects. The conventional filaments that contain only one outer electrode have the additional drawback that if the outer electrode is broken anywhere along the filament, the whole filament ceases luminescing. This makes the conventional filaments easily susceptible to damage.
There therefore exists a need for a reliable, flexible EL filament that is capable of emitting high light intensity when energized and which may be made into articles or incorporated into articles using textile fabrication techniques. There is also a need for an EL filament, only portions of which may be energized at any one time. Moreover, there is a need for an EL filament which does not fail completely when only a part of the filament is damaged.
SUMMARY
The present invention addresses the above needs by providing an EL filament that includes a core conductor, a luminescing layer surrounding the core conductor, and a braided outer electrode either embedded in the luminescing layer or surrounding the luminescing layer. In one embodiment, the core conductor is a multi-strand conductor. In a preferred embodiment, the core conductor is a multi -stranded conductor, the braided outer electrode covers about 50% of the surface of the luminescing layer, and the luminescing layer includes an activated zinc sulfide encapsulated phosphor. In another embodiment of the invention, the braided outer electrode includes a plurality of individually addressable electrodes. If the individual electrodes are insulated from one another, they may be individually energized thereby illuminating only a portion of the EL filament. One embodiment of the present invention that achieves the above includes a core conductor, a luminescing layer at least partially surrounding the core conductor, and two or more individually addressable electrodes disposed around the core conductor. In this embodiment of the invention, the individually addressable electrodes are insulated from one another; additionally, the individually addressable electrodes may be braided together to form an outer electrode, and may be embedded in the luminescing layer or disposed surrounding the luminescing layer.
To facilitate addressing the individual electrodes in the previous embodiment, the EL filament may also include a coupler for connecting the individual electrodes to the external power source. The coupler connects the closely spaced, fragile individual electrodes to more easily accessible, thicker more robust wires that may then be attached to the power circuit. The coupler may connect the individually addressable electrodes to two or more power inputs. Generally, a coupler includes robust, durable contacts connected to the more fragile individually addressable electrodes. These contacts are for connecting to the external power source and for supplying power to the individually addressable electrodes.
BRIEF DESCRIPTION OF THE DRAWINGS The invention will be better understood with reference to the attached figures in which:
Figure 1 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the present invention;
Figure 2 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the present invention;
Figure 3 shows a longitudinal elevation of one embodiment of an electroluminescent filament according to the present invention;
Figure 4 shows a longitudinal elevation of one embodiment of an electroluminescent filament according to the present invention; Figure 5 shows a longitudinal elevation of one embodiment of an electroluminescent filament according to the present invention;
Figure 6 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the invention;
Figure 7 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the present invention; Figure 8 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the present invention;
Figure 9 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the present invention; Figure 10 shows a cross-sectional view of one embodiment of an electroluminescent filament according to the present invention;
Figure 11 shows a perspective side view of one embodiment of an electroluminescent filament according to the present invention;
Figure 12 shows a series of wave forms that may be used for driving the electroluminescent filament of Figure 1 1 ;
Figure 13 shows a perspective top view of one embodiment of a coupler according to the present invention connected to an electroluminescent filament according to the present invention;
Figure 14A shows a cross-sectional view of one embodiment of a coupler according to the present invention connected to an electroluminescent filament according to the present invention;
Figure 14B shows a top plan view of the coupler of Figure 14A; and
Figure 15 shows a perspective top view of one embodiment of a coupler according to the present invention connected to an electroluminescent filament according to the present invention.
DETAILED DESCRIPTION
We have found that when an EL filament is fabricated using a multi- strand core conductor and a braided outer electrode the resulting filament is flexible enough to be used in textile fabrication technologies, and also has a light emission intensity and reliability that will allow it to be used commercially. This combination of flexibility, reliability, and brightness enables the EL filaments of the present invention to be used in a variety of applications including illuminated logos, illuminated materials for use in night clothing, safety clothing, color change cloth, outlining objects for safety, illuminated embroidery, and illuminated needlepoint. In addition, the EL filaments of the present invention may be braided over a non-conducting core such as a cotton fiber. This will produce a thicker more robust light emitting fiber which can be woven into belts etc, or which may be used to make illuminated nets which may be used, for example, in basketball, tennis, etc.
Generally, an electroluminescent filament according to the present invention includes a core conductor, a luminescing layer surrounding the core conductor, and an outer electrode surrounding the core conductor and insulated from the core conductor. By "surrounding" we mean that element A surrounds element B if element A at least partially covers the surface of element B. As used here, element A does not have to be in contact with element B to surround it; moreover, element A does not have to cover the entire surface of element B to surround it. For example, as used here, a helical shaped wire wound around but not touching a core, "surrounds" the core.
The electroluminescent filament may optionally include a first insulation layer surrounding the core conductor and a second insulation layer surrounding the luminescing layer. In one embodiment of the invention, the outer electrode may surround the luminescing layer. In an alternative embodiment, the outer electrode may be embedded in the luminescing layer.
If the filament includes a second insulation layer the outer electrode may be embedded in this insulation layer. To provide strength while maintaining flexibility, the core may be multi-stranded and the outer electrode braided. As described in detail below, additional braided layers may be added to improve strength, cut-through resistance, etc.
Generally, an electroluminescent filament produces light in response to an alternating or pulsed DC current source connected across the core conductor and outer electrode. The core conductor and the outer electrode can be connected across a voltage source in order to produce light as desired. It is possible to use more than one voltage source with a single filament. This may be the case if more than one outer electrode is present in the filament (see below) or if a multi-stranded core conductor is used.
The electroluminescent filaments of the present invention may be used to fabricate shapes that emit light when they are connected to and energized by the appropriate electrical power supply. The filaments of the present invention are flexible enough to be knitted, woven, braided, etc. using textile fabrication technologies that use raw materials in filamentary form. Using these technologies, the filaments of the present invention may be used to make all sorts of one, two, and three dimensional light emitting objects. Examples of such objects include clothing, works of art, molded parts, and informational displays. In clothing, for example, electroluminescent threads can be used to embroider logos, designs, or other accents.
Figure 1 shows one embodiment of an electroluminescent filament according to the present invention. The filament 100 includes a core conductor 101, a first insulating layer 102, a luminescing layer 104, an outer electrode 105, and a second insulating layer 106.
Core Conductor
The core conductor 101 is a conductor or semi-conductor, and may be of a single or multiple filamentary metallic or carbonaceous material, other electrically conducting or semi-conducting materials or combinations thereof. The core conductor 101 may be solid or porous. The cross-sectional shape of the core conductor 101 may be circular, flat, or any other acceptable geometry. Preferably, the core conductor 101 is a multiple-strand configuration of conducting filaments because bundles of fine filaments are more flexible than a solid individual filament. The multiple-strand configuration adds strength and flexibility to the filament.
Accordingly, in a preferred embodiment of the filament, the core conductor is a multi-strand core conductor. These multi-strand core conductors may be in a parallel, coiled, twisted, braided, or another acceptable configuration or arrangement. The number of strands, their individual diameters, composition, the method of packing and/or number of twists may be of any combination.
A particularly preferred core conductor material is a 19-strand bundle of stainless steel conductor filaments. Each strand (filament) is about 50 gauge (roughly equivalent to about 0.001 inch dia.). Each strand bundle has a fluorinated ethylene propylene (FEP) insulation layer about 0.002 inch thick, with an overall wire conductor outside diameter of about 0.012 inch (insulation inclusive). Such a core conductor is available from Baird Industries (Hohokus, NJ).
First Insulation Layer
Figure 1 shows an embodiment of the invention in which the filament or filaments of the core conductor are surrounded by a first insulation layer 102 of insulating material. While the first insulating layer 102 is not required to practice the invention, its presence is preferred. The first insulating layer 102 serves to reduce the probability of shorts between the core conductor and an outer electrode, thus increasing reliability.
In the embodiment shown in Figure 1, the first insulation layer 102 surrounds the core conductor. In the case of a multi-strand core conductor, each strand may be individually surrounded by an optional first insulation layer. An additional insulation layer may also surround the entire bundle of individually surrounded strands.
Luminescing Layer
Figure 1 shows an embodiment of the invention which includes a luminescing layer 104 surrounding the insulation layer or layers. The luminescing layer 104 preferably comprises "phosphor." Phosphor is a term that has evolved to mean any material that will give off light when placed in an electric field. The light may be of a variety of wavelengths. The luminescing layer 104 may be deposited as a continuous or interrupted coating on the outer surface of the core conductor's insulation layer. When the luminescing layer 104 is deposited as an interrupted coating, the result may a striped or banded, light producing product. If there is a plurality of individually insulated strands, the luminescing layer may be coated on each strand or disposed between the insulated strands.
Alternatively, the phosphor may be compounded directly into the first insulation layer and applied by extrusion or another process. In this embodiment, the first insulation layer and the luminescing layer are the same layer.
Typically, phosphor is comprised of copper and/or manganese activated zinc-sulfide particles. In a preferred embodiment, each phosphor particle is encapsulated to improve service life. The phosphor may be either neat or in the form of a phosphor powder/resin composite. Suitable resins include cyanoethyl starch or cyanoethyl cellulose, supplied as Acrylosan® or
Acrylocel® by TEL Systems of Troy, MI. Other resins, possessing a high dielectric strength, may be used in the composite matrix material.
A particularly preferred material for use in the luminescing layer 104 is the phosphor-based powder known as EL phosphor, available as EL-70 from Osram Sylvania Inc. (Towanda, PA). A preferred formulation for the composite is 20% resin 80% phosphor by total weight of the composition. However, other weight ratios may be used.
Other phosphors are available which emit different wavelengths of radiation, and combinations of phosphors may be used. The luminescing layer 104 may be deposited in any number of ways, such as: thermoplastic or thermoset processing, electrostatic deposition, fluidized powder bed, solvent casting, printing, spray-on application or other acceptable methods.
Another method for attaching the luminescing layer 104 to the first insulation layer, or to other suitable layers, if suitable for use with the materials in question, is to soften the first insulation layer 102, or other suitable layers with heat, or a solvent or other method and then to imbed the phosphor material into the first insulation layer 102, or other suitable layers.
Outer Electrode
Figure 1 shows an embodiment of the invention in which an outer electrode 105 surrounds the luminescing layer 104. In another embodiment of the invention, the outer electrode 105 may be applied before or simultaneously with the luminescing layer 104. The outer electrode 105 comprises an electrically conductive or semi-conductive material, and preferably, the outer electrode has a braided filamentary structure. By "braided filamentary structure" we mean a plurality of individual electrodes that are braided together. The individual electrodes that make up the braided outer electrode may be coated or uncoated. One advantage of an EL filament that includes a braided outer electrode is that if any of the individual electrodes that make up the braided structure are damaged the filament will continue to luminesce; only if all of the electrodes in the braided electrode are damaged will the filament cease luminescing. The filaments of the present invention therefore have a built in redundancy in the outer electrode; a feature which makes the filaments of the present invention more durable than conventional filaments that contain only one individual outer electrode. Examples of suitable outer electrode materials include metal, carbon, metal coated fibers, inherently conducting polymers, intrinsically conducting polymers, compounds containing indium tin oxide, and semiconductors. Other outer electrode configurations include: perforated wrap-around metallic foils (wherein the perforations may be of any shape, i.e., circular, slot or other); electrically conducting knitted, woven or non- woven cloth or fabric; non-woven mat material such as overlapping electrically conducting whiskers or tinsel; any other electrical conductor; or any combination of these materials. The outer electrode is preferably made of a non-transparent material. In this case, it is also preferred that the outer electrode is non- continuous (e.g., braided structure, foraminous, etc.) to allow the electro¬ luminescence generated in the luminescent layer to be emitted through the outer electrode.
Second Insulation Layer
Figure 1 shows an embodiment of the invention which includes a second insulation layer 106 within which the outer electrode 105 is embedded. In an alternative embodiment the insulation layer 106 may surround the outer electrode 105. The second insulation layer 106 is preferably comprised of an optically transparent, electrically insulating material, such as an amorphous or crystalline organic or inorganic material. The second insulation layer 106 may be applied in liquid or other form with a subsequent cure or other process that may result in a permanent, semi- permanent, or temporary protective layer. Particularly preferred materials include epoxies, silicones, urethanes, polyamides, and mixtures thereof. Other materials may be used to achieve desired effects. The transparent, electrically insulating, materials may also be used in other layers.
The second insulation layer 106 is not required, but is desirable to improve reliability. The second insulation layer 106 also improves the "feel"
(i.e.. surface texture) of the filament and resulting goods made from the filament.
A silicone coating resin, such as Part No. OF113-A & -B, available from Shin-Etsu Silicones of America (Torrance, CA), may be used for the second insulation layer 106. The silicone resin KE1871, available from Shin-
Etsu Silicones of America, may also be used for the second insulation layer 106.
Figure 2 shows an embodiment of the present invention that includes a core conductor 201 , surrounded by a first insulation layer 202, which is surrounded by an interlayer 203. The interlayer 203, is surrounded by the luminescing layer 204, which is surrounded by a second insulation layer 206, having embedded within it an outer electrode 205.
In this embodiment, the luminescing layer 204 is attached to the outermost surface of the first insulation layer 202 using one or more adhesion promoting interlayers 203. Interlayers 203 may be used generally to promote interlayer adhesion, or for other desired effects, such as modification of dielectric field strength or improved longitudinal strain performance. To promote adhesion to the surface of the first insulation layer, any process to modify the surfaces properties may be used, such as: mechanical abrasion, chemical etching, physical embossing, laser or flame treatment, plasma or chemical treatment or other processes to improve the surface properties.
Figure 3 shows an embodiment of the invention that includes a core conductor 301 surrounded by a first insulation layer 302, which is surrounded by a luminescing layer 304. The luminescing layer 304 is surrounded by a second insulation layer 306, having embedded within it a braided outer electrode 305. The braided outer electrode may include three or more individual electrodes forming a diagonal pattern. The individual electrodes may be intertwined. The braided structure may form a wire grid. Braids may include counter-wound individual electrodes having an under and over geometry. Figure 10 shows a more detailed depiction of the over and under geometry of a counter- wound braid 105. Braided structures add strength and flexibility to the filament.
The braided outer electrode may be formed from several different individual electrodes which can have the same or different gauges. The individual electrodes can have the same or different sizes, shapes, and compositions. In the embodiment shown, the individual electrodes are braided over the electroluminescent core. Preferably, the braid covers about 50% of the electroluminescent core although more or less coverage may be, used in specific applications. Figure 4 shows an embodiment of the invention that includes a core conductor 401 surrounded by a first insulation layer 402, which is surrounded by an interlayer 403. The interlayer 403, is surrounded by the luminescing layer 404, which is surrounded by a second insulation layer 406, having embedded within it an electrode 405. The interlayer 403 is preferably an adhesion promoting interlayer, but may also serve some other purpose in improving the operation of the filament.
Figure 5 shows an embodiment of the invention that includes a core conductor 501 surrounded by a first insulation layer 502, which is surrounded by an luminescing layer 504. The luminescing layer 504 is surrounded by a second insulation layer 506 which is surrounded by an electrode 505. The outer electrode 505 is surrounded by an additional protective layer 506a. The additional protective layer 506a may be of any of the materials generally disclosed herein. Figure 6 shows an embodiment of the invention that includes a dielectric braid 607 surrounding the first insulation layer 602 and embedded in the luminescing layer 604. To form the dielectric braid 607, a dielectric fiber is braided, spiral wrapped, or applied using a combination of both geometries, onto the first insulation layer 602. The dielectric braid 607 may also be produced by braiding, spiral wrapping, or using a combination of both geometries, a dielectric fiber onto the core conductor 601 , such that the dielectric braid 607 surrounds the core conductor 601. The dielectric braid 607 also surrounds the core conductor 601 , or the first insulation layer 602 that surrounds the core conductor 601. Generally, dielectric braiding may be used in any of the layers of the invention, using dielectric fibers as described below.
The dielectric fibers forming the dielectric braids described herein may be made of glass, Kevlar®, polyester, acrylate, or other organic or inorganic materials suitable for use as dielectric fibers. The luminescing layer(s) described herein is applied over this dielectric braid. The dielectric fiber layer then acts as a coating thickness controller and may aid in adhering the luminescent layer to the core conductor.
This adhesion improvement is particularly helpful when the first insulation layer is a low friction and or low adhesion coating, such as a fluoropolymer coating. Additionally, the dielectric fiber layer provides improved resistance to "cutthrough" and improved axial strength because the dielectric fiber layer will act as a strength member. The outer electrode described herein may be then directly applied to the phosphor containing dielectric fiber layer, and the second insulation layer described herein is applied to the outer electrode.
Figure 7 shows an embodiment of the invention that includes a core conductor 701 surrounded by a first insulation layer 702, which is surrounded by an interlayer 703. The interlayer 703 is surrounded by a dielectric braid 707, similar to the dielectric braid 607 of Figure 6. The luminescing layer 704 is coated over the dielectric braid 707, similar to the relationship between the luminescing layer 604 and the dielectric braid 607 of Figure 6. Surrounding the luminescing layer 704 is the second insulation layer 706, having embedded within it the outer electrode 705.
Figure 8 shows an embodiment of the invention that includes a core conductor 801 surrounded by a first insulation layer 802, which is surrounded by a dielectric braid 807, similar to the dielectric braid 607 of Figure 6. The luminescing layer 804 is coated over the dielectric braid 807, similar to the relationship between the luminescing layer 604 and the dielectric braid 607 of Figure 6. Surrounding the luminescing layer 804 is the second insulation layer 806, having embedded within it both the outer electrode 805 and a second dielectric braid 808. The second dielectric braid 808 may be of the same materials as the dielectric braid already described.
Figure 9 shows an embodiment of the invention that includes an outer electrode 905, for example a braided wire electrode, that is applied directly on the first insulation layer 902. In another embodiment, the outer electrode 905 may be applied directly on the core conductor 901, so long as they are insulated in some way. In the embodiment shown, the entire structure is then coated with the material of the luminescing layer 904. The outer electrode 905 is then embedded in the luminescing layer 904. The outer electrode 905 thus applied may be combined with dielectric materials. For example, if the outer electrode 905 is a braided wire electrode, it may be combined so as to be co-braided with a dielectric braid 907 directly onto either the optional first insulation layer 902, or the core conductor 901 directly. An interlayer 903, for example an adhesion promoting interlayer, may also be present if desired. Additional layers or fillers may be added, or the above mentioned layers may be modified. For example, the use of transparent colored materials and/or translucent materials in the layers may alter the spectrum of emitted light, thereby producing different colors. Opaque materials may be used in the layers, producing, for example, a striped product. Phosphorescent (i.e., "glow-in-the-dark"), and reflective materials may also be used. The reflective materials may be particulates, or they might be sheet material. Other additives may be used to correct color output and filter the spectral emission. For example, a laser dye may be added to the phosphor composition or coated on top of the phosphor composition or coated on top of the phosphor coating. This material will alter the spectral emission.
Additional layers, not herein described, may be added, as long as they result in a usable electroluminescent filament, as would be recognized by one of ordinary skill.
Individually Addressable Electrodes
Figure 11 shows an electroluminescent filament 1000 according to the present invention that includes a braided outer electrode 1010, a luminescent layer 1020, and a core conductor 1030. The figure shows a braided outer electrode 1010 that includes a plurality (six in the embodiment in Figure 1 1) of individually addressable electrodes 1040-1045. In this embodiment, the individually addressable electrodes are insulated from one another. This may be achieved, for example, by braiding the outer electrode 1010 using individually insulated electrodes 1040-1045. This embodiment may optionally include insulation layers, interlayers, dielectric braids, and other layers as described above.
In operation, the individually addressable electrodes of this embodiment may be "energized" individually. By "energized" we mean that an AC (or pulsed DC) voltage difference is applied between an individual electrode and the core conductor. If the individually addressable electrode that is energized is insulated from the other individual electrodes, an electric field will only be produced in the space between the energized electrode and the core conductor. Therefore, only the phosphor in the luminescent layer that is between the energized electrode and the core conductor will electroluminesce. In this way, it is possible to make only portions of the EL filament emit light.
Figure 12 shows an example of a set of voltage waveforms that may be used to produce a chasing light pattern in the EL filament of Figure 11. In Figure 12, wave form 1050 corresponds to the voltage applied between the core conductor and electrode 1040, wave form 1051 corresponds to the voltage applied between the core conductor and electrode 1041, etc. By controlling the sequence of excitation of each electrode individually, any number of time dependent light patterns and effects can be produced. In one embodiment of the invention, the individual electrodes are energized in a sequence that is controlled using a microprocessor. The use of a microprocessor to control multiple electroluminescent lamps has been described previously in U.S. Patent Application No. 08/698,973, filed August 16, 1996, which is incorporated herein by reference. By sequentially energizing the braided individually addressable electrodes using waveforms similar to those shown in Figure 12, a spiral chasing light pattern was observed. By controlling the sequence of the individual electrodes, it will be possible to produce many different light patterns such as barber pole effects, and moving stripes. In addition, by selectively registering colored layers with the positions of the individual electrodes, it will be possible to make the EL filament emit different colors when different individual electrodes are energized.
Figure 13 shows one embodiment of a coupler 1060 for facilitating coupling the individually addressable electrodes to the power source. In this embodiment, the coupler 1060 includes a separator or manifold 1070 that has an opening 1080 to accommodate the EL filament 1090. The individually addressable electrodes 1100-1103 (4 electrodes in this example) are electrically connected to wires 1110-1 113 via contact pads 1120-1123. The core conductor 1130 is also exposed to be connected to the power source. The wires 1 1 10-1113 are more robust and durable than the individually addressable electrodes 1100-1103 and these wires are connected to the power supply circuits and microprocessor controller. The individually addressable electrodes may be connected to the contact pads via conventional methods; for example, soldering.
Figures 14A and 14B shows cross-sectional and plan views of a connector similar to that shown in Figure 13. Figure 15 shows another embodiment of a coupler according to the present invention. In this embodiment the coupler 1200 includes a set of conducting pins 1210 mounted in a separator 1220. One end 1220 of the pins 1210 is connected to the individually addressable electrodes and the core conductor. Again, the electrodes and the conductor may be attached to the pins using conventional methods such as soldering. In operation, the end
1230 of the pins not connected to the electrodes is connected to the power supply. Generally, a coupler includes a means for connecting the fragile individual electrodes to the external power supply. It is preferred that this means includes durable, robust contacts connected to the individual electrodes and for supplying power to the more fragile electrodes. In addition, the coupler may also serve to spatially separate the individually addressable electrodes for easy access and manipulation.
When an El filament includes individually addressable electrodes, it is possible to remove the core electrode completely. In this embodiment of the invention, a voltage difference is applied between different individually addressable electrodes in the outer electrode. This voltage difference produces an electric field which causes the luminescent layer to emit light.
In this embodiment of the invention, the conducting core may be absent altogether or may be replaced by a non conducting core, which may be used to add strength to the filament. In this embodiment of the invention, it is preferred that the outer electrode is embedded in the luminescing layer.
Example of an EL Filament According to the Present Invention:
A core conductor, comprised of a 19 strand bundle of 50 gauge wire, is selected. The entire bundle has a 2 mil thick fluoropolymer insulation coating that forms the first insulation layer. The first insulation layer is then coated with a particulate composite of an 80/20% by weight phosphor powder and resin mixture.
The particulate composite is prepared as a solution suspension by mixing the appropriate ratio of phosphor powder and resin with a 50/50 mixture of acetone and dimethylacetamide. The viscosity of the solution/suspension may be adjusted by varying the solvent/solids ratio. To apply the coating, the core conductor is passed through a vertically oriented reservoir of phosphor composite, with a coating die at the bottom of the reservoir controlling the coating's thickness during the deposition process. The solvents are removed from the wet coating as the wire passes through a series of in-line, heated tube furnaces. The result is a solidified composite coating containing the phosphor. Using a binary blend of solvents assists the drying process, as the two solvents evaporate at different rates due to differences in boiling points. The finished product is a uniform, concentric and approximately 2 mil thick phosphor coating forming the luminescing layer on the first insulation layer.
Next, a 16-count (number of carriers) braider is used to produce a 50% coverage of 1 mil diameter wire over the luminescing layer. This braid forms the outer electrode.
Finally, a second coating reservoir with an appropriate diameter sizing die is used to apply the second insulation layer onto the wire. The coated filament is passed through in-line tube furnaces to convert the second insulation layer into its final form.

Claims

CLAIMSWhat is claimed is:
1. An electroluminescent filament comprising:
(a) a multi-strand core conductor;
(b) a first insulating layer surrounding the multi-strand core conductor;
(c) a luminescing layer surrounding the first insulating layer;
(d) a second insulating layer surrounding the luminescing layer; and
(e) a braided outer electrode embedded in the second insulating layer; wherein the electroluminescent filament has an outside diameter of no more than about 0.02 inches.
2. The electroluminescent filament of claim 1 , wherein the outer electrode covers about 50% of the surface of the luminescing layer.
3. An electroluminescent filament comprising: a multi-strand core conductor; a luminescing layer surrounding the multi-strand core conductor; and a braided outer electrode surrounding the multi-strand core conductor.
4. The electroluminescent filament of claim 3, wherein the braided outer electrode is embedded in the luminescing layer.
5. The electroluminescent filament of claim 4, further comprising an outer insulation layer surrounding the luminescing layer.
6. The electroluminescent filament of claim 3, wherein the braided outer electrode surrounds the luminescing layer.
7. The electroluminescent filament of claim 6, further comprising an outer insulation layer surrounding the luminescing layer, and wherein the braided outer electrode is embedded in the outer insulation layer.
8. The electroluminescent filament of claim 3, further comprising an insulation layer disposed between the multi-strand core conductor and the luminescing layer.
9. The electroluminescent filament of claim 3, further comprising an adhesion interlayer between any two of the layers.
10. The electroluminescent filament of claim 3, wherein the luminescing layer comprises a phosphor.
11. The electroluminescent filament of claim 10, wherein the phosphor comprises a zincsulfide encapsulated phosphor and an activator selected from the group consisting of copper, manganese and mixtures thereof.
12. The electroluminescent filament of claim 3, further comprising a first dielectric braid embedded in the luminescing layer.
13. The electroluminescent filament of claim 5, further comprising a second dielectric braid embedded in the outer insulation layer.
14. The electroluminescent filament of claim 7, further comprising a second dielectric braid embedded in the outer insulation layer.
15. The electroluminescent filament of claim 3, wherein the outer electrode comprises an elongated oriented polymer material.
16. An electroluminescent filament comprising: a core conductor; a luminescing layer surrounding the core conductor; and a foraminous outer electrode surrounding the core conductor.
17. The electroluminescent filament of claim 16, wherein the foraminous outer electrode is a braided outer electrode.
18. The electroluminescent filament of claim 16, wherein the foraminous outer electrode is embedded in the luminescing layer.
19. The electroluminescent filament of claim 16, wherein the foraminous outer electrode surrounds the luminescing layer.
20. The electroluminescent filament of claim 16, wherein the core conductor is a multi-strand core conductor.
21. An electroluminescent filament made by the process comprising the steps of:
(a) providing a core conductor;
(b) coating the core conductor with a luminescing layer; and
(c) braiding an outer electrode over the luminescing layer.
22. The electroluminescent filament of claim 21, wherein the process further comprises the step of coating the electroluminescent filament with an outer insulating layer after the outer electrode has been braided over the luminescing layer.
23. The electroluminescent filament of claim 21, wherein the core conductor comprises a multi-strand conductor surrounded by a inner insulating layer.
24. An electroluminescent filament, comprising:
(a) a core conductor;
(b) a luminescing layer at least partially surrounding the core conductor; and
(c) two or more individually addressable electrodes disposed around the core conductor.
25. The electroluminescent filament according to claim 24, wherein the individually addressable electrodes are insulated from one another.
26. The electroluminescent filament according to claim 25, wherein the individually addressable electrodes are braided together to form an outer electrode.
27. The electroluminescent filament according to claim 24, further comprising means for connecting the individually addressable electrodes to two or more power inputs.
28. The electroluminescent filament according to claim 24, wherein the core conductor is a multi-strand conductor.
29. The electroluminescent filament according to claim 24, wherein the individually addressable electrodes are embedded in the luminescing layer.
30. The electroluminescent filament to claim 24, wherein the individually addressable electrodes are disposed surrounding the luminescing layer.
31. The electroluminescent filament according to claim 24, further comprising an insulating layer surrounding the luminescing layer.
32. The electroluminescent filament according to claim 31, wherein the individually addressable electrodes are embedded in the insulating layer.
33. The electroluminescent filament according to claim 24, further comprising an inner insulating layer disposed between the core conductor and the luminescing layer.
34. An electroluminescent filament, comprising: (a) a multi-strand core conductor;
(b) an inner insulating layer at least partially surrounding the core conductor;
(c) a luminescing layer at least partially surrounding the inner insulating layer; (d) an outer insulating layer at least partially surrounding the luminescing layer; and (e) two or more individually addressable electrodes braided together and embedded in the outer insulating layer.
35. The electroluminescent filament according to claim 34, further comprising means for applying a voltage difference between the core conductor and a first subset of the individually addressable electrodes, and for applying a voltage difference between the core conductor and a second subset of the individually addressable electrodes.
PCT/US1996/020434 1995-12-22 1996-12-20 Electroluminescent filament WO1997024015A1 (en)

Priority Applications (6)

Application Number Priority Date Filing Date Title
EA199800473A EA000441B1 (en) 1995-12-22 1996-12-20 Electroluminescent filament
IL12498896A IL124988A0 (en) 1995-12-22 1996-12-20 Electroluminescent filament
EP96944937A EP0956740A1 (en) 1995-12-22 1996-12-20 Electroluminescent filament
AU13418/97A AU709110C (en) 1995-12-22 1996-12-20 Electroluminescent filament
BR9612202-1A BR9612202A (en) 1995-12-22 1996-12-20 '' electroluminescent filament ''
JP52383097A JP2002502538A (en) 1995-12-22 1996-12-20 Electroluminescent filament

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
US08/578,887 US5753381A (en) 1995-12-22 1995-12-22 Electroluminescent filament
US08/578,887 1995-12-22
US08/770,588 US5876863A (en) 1995-12-22 1996-12-19 Electroluminescent filament
US08/770,588 1996-12-19

Publications (1)

Publication Number Publication Date
WO1997024015A1 true WO1997024015A1 (en) 1997-07-03

Family

ID=27077604

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/US1996/020434 WO1997024015A1 (en) 1995-12-22 1996-12-20 Electroluminescent filament

Country Status (10)

Country Link
US (2) US5753381A (en)
EP (1) EP0956740A1 (en)
JP (1) JP2002502538A (en)
CN (1) CN1209257A (en)
BR (1) BR9612202A (en)
CA (1) CA2241115A1 (en)
EA (1) EA000441B1 (en)
IL (1) IL124988A0 (en)
NZ (1) NZ326128A (en)
WO (1) WO1997024015A1 (en)

Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0838975A1 (en) * 1996-10-22 1998-04-29 Elam-Electroluminescent Industries Ltd. Electroluminescent light source
WO1998038624A1 (en) * 1997-02-28 1998-09-03 Miniflame Limited Sign apparatus
GB2338332A (en) * 1997-02-28 1999-12-15 Miniflame Ltd Sign apparatus
GB2347545A (en) * 1999-03-01 2000-09-06 Helen Reid Displays for domestic fabrics
NL1013742C2 (en) * 1999-12-03 2001-06-06 Mark Kok System for generating light by means of electroluminescence.
WO2002098177A1 (en) * 2001-05-31 2002-12-05 Agfa Gevaert N.V. System for generating light by means of electroluminescence
GB2433645A (en) * 2005-12-13 2007-06-27 Tenso Technologies Ltd Durable electroluminescent fibre
WO2018164733A1 (en) * 2017-03-09 2018-09-13 Google Llc Conductive yarn structure for interactive textiles
US20220026031A1 (en) * 2013-09-13 2022-01-27 Willis Electric Co., Ltd. Tangle-resistant decorative lighting assembly

Families Citing this family (78)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
USRE38475E1 (en) * 1998-01-06 2004-03-23 David Marshall Rescue Concepts, LLC Radio beacon that uses a light emitter as an antenna
US6183328B1 (en) * 1999-01-05 2001-02-06 Sea Marshall Rescue Systems, Ltd. (Usa) Radio beacon that uses a light emitter as an antenna
US6660378B2 (en) * 1998-04-23 2003-12-09 Aspen Pet Products, Inc. Glow-in-the-dark animal tie-out
US6085698A (en) * 1998-08-26 2000-07-11 Klein; Andrei Night visibility enhanced clothing and dog leash
JP2000299515A (en) * 1999-04-14 2000-10-24 Murata Mfg Co Ltd Piezoelectric transformer, piezoelectric inverter, and liquid crystal display
NO311317B1 (en) 1999-04-30 2001-11-12 Thin Film Electronics Asa Apparatus comprising electronic and / or optoelectronic circuits and method of realizing and / or integrating circuits of this kind in the apparatus
US7401949B2 (en) 1999-08-11 2008-07-22 I3 Ventures Illuminated rub-rail/bumper assembly
US6869202B2 (en) * 1999-08-11 2005-03-22 Brian N. Tufte Lighting apparatus
US6538375B1 (en) * 2000-08-17 2003-03-25 General Electric Company Oled fiber light source
IL156324A0 (en) * 2000-12-13 2004-01-04 Teldor Wires And Cables Ltd Electroluminescent cable and mounting system therefor
TW533446B (en) * 2000-12-22 2003-05-21 Koninkl Philips Electronics Nv Electroluminescent device and a method of manufacturing thereof
US6448123B1 (en) 2001-02-20 2002-09-10 Taiwan Semiconductor Manufacturing Company Low capacitance ESD protection device
JP2002280165A (en) * 2001-03-16 2002-09-27 Shuichi Nakamura Electroluminescent body
US6437422B1 (en) * 2001-05-09 2002-08-20 International Business Machines Corporation Active devices using threads
JP4252741B2 (en) * 2001-06-07 2009-04-08 富士フイルム株式会社 Light source device
US6697191B2 (en) * 2001-06-11 2004-02-24 Visson Ip, Llc Electro-optical display
JP4114331B2 (en) * 2001-06-15 2008-07-09 豊田合成株式会社 Light emitting device
US20030066073A1 (en) * 2001-09-28 2003-04-03 Rebh Richard G. Methods and systems of interactive advertising
US20030063052A1 (en) * 2001-09-28 2003-04-03 Rebh Richard G. Methods and systems of conveying information with an electroluminescent display
US20030062825A1 (en) * 2001-09-28 2003-04-03 Chih-Yuan Wang Electric luminescent element
US6753096B2 (en) * 2001-11-27 2004-06-22 General Electric Company Environmentally-stable organic electroluminescent fibers
ATE433007T1 (en) * 2002-05-02 2009-06-15 Fatzer Ag LUMINOUS ROPE
US6771021B2 (en) * 2002-05-28 2004-08-03 Eastman Kodak Company Lighting apparatus with flexible OLED area illumination light source and fixture
US20040088834A1 (en) * 2002-09-13 2004-05-13 Yu Chih Hsiung Zipper
GB2396252A (en) * 2002-10-01 2004-06-16 Steven Leftly Textile light system
US20050125874A1 (en) * 2003-01-08 2005-06-16 Devore Sandra B. Garment and garment accessories having luminescent accents and fabrication method therefor
AU2003246129A1 (en) * 2003-01-09 2004-08-10 Zhengkai Yin A electroluminescent wire and the method of manufacturing the same
US6964493B1 (en) 2003-01-17 2005-11-15 Whitlock Enterprises, Llc Method and apparatus for adding light transmission to an article of clothing
CN2599896Y (en) * 2003-01-29 2004-01-14 何文政 Multicolour electroluminescent wire
JP2005108643A (en) * 2003-09-30 2005-04-21 Sanyo Electric Co Ltd Organic el rod and its manufacturing method
US20050152126A1 (en) * 2004-01-12 2005-07-14 Teldor Wires & Cables Ltd. Electroluminescent cable assembly and electroluminescent cable constructions included therein
US7134773B2 (en) 2004-03-29 2006-11-14 I3 Ventures, Llc Lighting apparatus
CN1774789A (en) * 2004-03-30 2006-05-17 松下电器产业株式会社 Energy converter and light source
GB0420383D0 (en) * 2004-09-14 2004-10-13 Koninkl Philips Electronics Nv A fibre or filament
GB0420705D0 (en) * 2004-09-17 2004-10-20 Koninkl Philips Electronics Nv A fibre or filament
GB0420809D0 (en) * 2004-09-18 2004-10-20 Koninkl Philips Electronics Nv Elongated electro-optic device
WO2006036890A2 (en) * 2004-09-27 2006-04-06 Robert Kelly Integrated systems with electroluminescent illumination and methods thereof
US20060076899A1 (en) * 2004-10-12 2006-04-13 Israel Baumberg Emergency lighting system
US20070126341A1 (en) * 2004-11-22 2007-06-07 Sumitomo Electric Industries, Ltd. El fiber and photocatalyst reaction vessel
KR100659579B1 (en) * 2004-12-08 2006-12-20 한국전자통신연구원 Light Emitting Diode and Method for Preparing Light Emitting Diode
CN100502609C (en) * 2004-12-29 2009-06-17 郑岩 Electroluminescence wire
CN100353815C (en) * 2004-12-30 2007-12-05 何文政 Fantasy colored electroluminescence lines and producing method
US7431484B2 (en) * 2005-03-04 2008-10-07 Yazaki North America, Inc. Embroidered instrument cluster
US20060201293A1 (en) * 2005-03-14 2006-09-14 Tufte Brian N Lighting apparatus
US7406231B1 (en) 2005-06-21 2008-07-29 Avaya Technology Corp. Electroluminescent patch cable
IL169547A0 (en) * 2005-07-06 2007-07-04 Israel Baumberg Electroluminescent cable with composite core electrode
US20070082578A1 (en) * 2005-10-06 2007-04-12 Haynes Enterprise, Inc. Electroluminescent display apparatus for an inflatable device and method
KR100805038B1 (en) * 2006-05-04 2008-02-20 주식회사 엘지화학 Organic Light Emitting Diode And Method For Preparing Thereof
GB2440738A (en) * 2006-08-08 2008-02-13 Univ Manchester Electroluminescent fabric
US7524082B2 (en) * 2007-02-16 2009-04-28 Todd Michael North Networking cable with lighting system for cable tracing
EP2227512A1 (en) 2007-12-18 2010-09-15 Lumimove, Inc., Dba Crosslink Flexible electroluminescent devices and systems
US20100123385A1 (en) * 2008-11-18 2010-05-20 Willorage Rathna Perera Electroluminescent fibers, methods for their production, and products made using them
US8680400B2 (en) * 2009-11-17 2014-03-25 At&T Intellectual Property I, L.P. Visual cable identification
US9539438B2 (en) 2010-03-11 2017-01-10 Merck Patent Gmbh Fibers in therapy and cosmetics
JP2013522816A (en) * 2010-03-11 2013-06-13 メルク パテント ゲーエムベーハー Light emitting fiber
KR20120109081A (en) * 2011-03-24 2012-10-08 삼성디스플레이 주식회사 Organic light emitting diode display
EP2688646A1 (en) 2011-03-24 2014-01-29 Merck Patent GmbH Organic ionic functional materials
WO2012149688A1 (en) * 2011-05-05 2012-11-08 拓实电子(深圳)有限公司 El luminescence filament
WO2012152366A1 (en) 2011-05-12 2012-11-15 Merck Patent Gmbh Organic ionic compounds, compositions and electronic devices
US8611234B1 (en) 2011-07-11 2013-12-17 Lockheed Martin Corporation Network interface with cable tracing
DE102012003452B4 (en) * 2012-02-21 2014-12-11 Daimler Ag Component for the outer surface of a vehicle
CN102769954B (en) * 2012-07-06 2015-08-19 上海科润光电技术有限公司 A kind of dynamic electric electroluminescent wire of brightness gradual change
DE102014103978A1 (en) * 2014-03-24 2015-09-24 Ditf Deutsche Institute Für Textil- Und Faserforschung Stuttgart Sensorgarn
DE102014206599A1 (en) * 2014-04-04 2015-10-08 Leoni Kabel Holding Gmbh Supply line and system for displaying operating states or warning signals, especially in the motor vehicle
KR101579101B1 (en) * 2014-06-17 2015-12-21 한국기계연구원 Organic semiconductor element and manufacturing method thereof, fabric structure and nonwoven structure using organic semiconductor element, and semiconductor device using organic semiconductor element, fabric structure or nonwoven structure
WO2015194815A1 (en) * 2014-06-17 2015-12-23 한국기계연구원 Organic semiconductor element and manufacturing method therefor, fabric structure and nonwoven structure using same, and semiconductor device using same
KR101579096B1 (en) * 2014-06-17 2015-12-21 한국기계연구원 Organic semiconductor element comprising linear source electrode, linear drain electrode and linear gate electrode in parallel and manufacturing method thereof, fabric structure and nonwoven structure using organic semiconductor element, and semiconductor device using organic semiconductor element, fabric structure or nonwoven structure
KR101595290B1 (en) * 2014-06-17 2016-02-18 한국기계연구원 Organic semiconductor element comprising linear source electrode and linear drain electrode and manufacturing method thereof, fabric structure and nonwoven structure using organic semiconductor element, and semiconductor device using organic semiconductor element, fabric structure or nonwoven structure
CN105278046A (en) * 2014-07-23 2016-01-27 中兴通讯股份有限公司 Object identification method and device
KR101689150B1 (en) * 2016-01-25 2016-12-23 주식회사 포비드림 Portable linear emergency guidance device
JP6377100B2 (en) * 2016-06-21 2018-08-22 株式会社有明電装 Inorganic EL wire light sound transmission system
US11260586B2 (en) 2016-11-18 2022-03-01 Massachusetts Institute Of Technology Multimaterial 3d-printing with functional fiber
US20200240041A1 (en) * 2017-10-18 2020-07-30 University Of Central Florida Research Foundation, Inc. Fibers having electrically conductive core and color-changing coating
RU2677160C1 (en) * 2018-04-22 2019-01-15 Цзе ЧЖАН Fire resistant textile thread with low electrical resistance
DE102018114465A1 (en) * 2018-06-15 2019-12-19 Osram Opto Semiconductors Gmbh OPTOELECTRONIC FIBER AND DEVICE AND METHOD FOR PRODUCING AN OPTOELECTRONIC FIBER
US11708649B2 (en) 2020-05-21 2023-07-25 University Of Central Florida Research Foundation, Inc. Color-changing fabric having printed pattern
CN216891400U (en) * 2021-12-20 2022-07-05 上海科润光电技术有限公司 Embroidery flexible electroluminescent silk thread
CN114892392A (en) * 2022-04-25 2022-08-12 复旦大学 Electroluminescent color-changing fiber and preparation method and application thereof

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3069579A (en) * 1960-03-18 1962-12-18 Westinghouse Electric Corp Electroluminescent device
US3819973A (en) * 1972-11-02 1974-06-25 A Hosford Electroluminescent filament

Family Cites Families (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3052812A (en) * 1959-12-23 1962-09-04 Hughes Aircraft Co Flexible electroluminescent strand
US3278784A (en) * 1961-12-11 1966-10-11 Masaharu Nagatomo Light producing formation comprising luminescent electrically excitable fibers
US3571647A (en) * 1969-03-19 1971-03-23 Astronics Luminescent Inc Flexible electroluminescent structures
US3803437A (en) * 1970-04-15 1974-04-09 Cornell Aeronautical Labor Inc Woven electroluminescent panel
US5381310A (en) * 1991-09-25 1995-01-10 Brotz; Gregory R. Sheet-illuminating system
IL104052A (en) * 1992-12-10 1996-07-23 Elam Electroluminescent Ind Lt Electroluminescent light sources

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US3069579A (en) * 1960-03-18 1962-12-18 Westinghouse Electric Corp Electroluminescent device
US3819973A (en) * 1972-11-02 1974-06-25 A Hosford Electroluminescent filament

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of EP0956740A4 *

Cited By (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0838975A1 (en) * 1996-10-22 1998-04-29 Elam-Electroluminescent Industries Ltd. Electroluminescent light source
US5869930A (en) * 1996-10-22 1999-02-09 Elam-Electroluminescent Industries Ltd. Electroluminescent light source with a mixture layer filled with a transparent filler substance
WO1998038624A1 (en) * 1997-02-28 1998-09-03 Miniflame Limited Sign apparatus
GB2338332A (en) * 1997-02-28 1999-12-15 Miniflame Ltd Sign apparatus
GB2338332B (en) * 1997-02-28 2001-09-12 Miniflame Ltd Sign apparatus
GB2347545A (en) * 1999-03-01 2000-09-06 Helen Reid Displays for domestic fabrics
WO2001041511A1 (en) * 1999-12-03 2001-06-07 Mark Kok System for generating light by means of electroluminescence
NL1013742C2 (en) * 1999-12-03 2001-06-06 Mark Kok System for generating light by means of electroluminescence.
WO2002098177A1 (en) * 2001-05-31 2002-12-05 Agfa Gevaert N.V. System for generating light by means of electroluminescence
GB2433645A (en) * 2005-12-13 2007-06-27 Tenso Technologies Ltd Durable electroluminescent fibre
US20220026031A1 (en) * 2013-09-13 2022-01-27 Willis Electric Co., Ltd. Tangle-resistant decorative lighting assembly
US11578842B2 (en) 2013-09-13 2023-02-14 Willis Electric Co., Ltd. Tangle-resistant decorative lighting assembly
WO2018164733A1 (en) * 2017-03-09 2018-09-13 Google Llc Conductive yarn structure for interactive textiles
US10876229B2 (en) 2017-03-09 2020-12-29 Google Llc Conductive yarn structure for interactive textiles

Also Published As

Publication number Publication date
EA000441B1 (en) 1999-08-26
IL124988A0 (en) 1999-01-26
NZ326128A (en) 1999-11-29
EA199800473A1 (en) 1998-12-24
EP0956740A4 (en) 1999-11-17
US5876863A (en) 1999-03-02
US5753381A (en) 1998-05-19
EP0956740A1 (en) 1999-11-17
CN1209257A (en) 1999-02-24
AU709110B2 (en) 1999-08-19
AU1341897A (en) 1997-07-17
JP2002502538A (en) 2002-01-22
BR9612202A (en) 1999-12-28
CA2241115A1 (en) 1997-07-03

Similar Documents

Publication Publication Date Title
US5876863A (en) Electroluminescent filament
US20100003496A1 (en) Electro-luminant fabric structures
US20040247262A1 (en) Color-changing and multi-colored electroluminescent cable
WO2007004223A2 (en) Electroluminescent cable and method of fabrication thereof
WO2009037631A1 (en) Conductive yarn for electronic textile applications
US20100123385A1 (en) Electroluminescent fibers, methods for their production, and products made using them
US20180240396A1 (en) Direct Integration of Individually Controlled Pixels into a Knitted Fabric Matrix
JP2007531040A (en) Optical fiber with transverse electric field
JP7362948B2 (en) LED filament and lamp
AU709110C (en) Electroluminescent filament
US3278784A (en) Light producing formation comprising luminescent electrically excitable fibers
MXPA98005084A (en) Filamento electroluminisce
JP2003338206A (en) Linear or tape-shaped light emitter
CN212270340U (en) Electroluminescent braided fabric with adjustable color
EP1588587A9 (en) A colour electroluminescent wire and a method of manufacturing the same
JP4594926B2 (en) Textile surface structure comprising a plurality of conductive fibers or an array of conductive fibers and method for producing the same
CN211972585U (en) Safety belt assembly and flexible lead thereof
CN216891400U (en) Embroidery flexible electroluminescent silk thread
RU2050042C1 (en) Method for manufacturing of electroluminescent light sources and device for its implementation
RU2000678C1 (en) Flexible electroluminescent source of light
JP2001126546A (en) Braided wire and method of producing the same
JP2021114357A (en) Linear light emission body

Legal Events

Date Code Title Description
WWE Wipo information: entry into national phase

Ref document number: 96199972.1

Country of ref document: CN

AK Designated states

Kind code of ref document: A1

Designated state(s): AL AM AT AU AZ BB BG BR BY CA CH CN CU CZ DE DK EE ES FI GB GE HU IL IS JP KE KG KP KR KZ LK LR LS LT LU LV MD MG MK MN MW MX NO NZ PL PT RO RU SD SE SG SI SK TJ TM TR TT UA UG UZ VN AM AZ BY KG KZ MD RU TJ TM

AL Designated countries for regional patents

Kind code of ref document: A1

Designated state(s): KE LS MW SD SZ UG AT BE CH DE DK ES FI FR GB GR IE IT LU MC NL PT SE BF BJ CF CG CI CM GA

DFPE Request for preliminary examination filed prior to expiration of 19th month from priority date (pct application filed before 20040101)
121 Ep: the epo has been informed by wipo that ep was designated in this application
WWE Wipo information: entry into national phase

Ref document number: 326128

Country of ref document: NZ

ENP Entry into the national phase

Ref document number: 2241115

Country of ref document: CA

Ref document number: 2241115

Country of ref document: CA

Kind code of ref document: A

WWE Wipo information: entry into national phase

Ref document number: PA/a/1998/005084

Country of ref document: MX

Ref document number: 199800473

Country of ref document: EA

WWE Wipo information: entry into national phase

Ref document number: 1996944937

Country of ref document: EP

REG Reference to national code

Ref country code: DE

Ref legal event code: 8642

WWP Wipo information: published in national office

Ref document number: 1996944937

Country of ref document: EP

WWW Wipo information: withdrawn in national office

Ref document number: 1996944937

Country of ref document: EP